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The figure above shows 2 circles. The larger circle has center A [#permalink]
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Great!

Originally posted by venkyappu19981999 on 04 Aug 2021, 11:49.
Last edited by venkyappu19981999 on 07 Aug 2021, 09:20, edited 1 time in total.
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Re: The figure above shows 2 circles. The larger circle has center A [#permalink]
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KarunMendiratta wrote:
Explanation:

(Refer to the figure below)

Since, AM = ME = \(R\)
AME is an isosceles right triangle i.e. AE = \(\sqrt{2}R\)

AE = \(R + 2r\)
\(\sqrt{2}R = R + 2r\)
\((\sqrt{2}-1)R = 2r\)

Col. A: \(R\)
Col. B: \(2(2r)\)

Col. A: \(R\)
Col. B: \(2(\sqrt{2}-1)R\)

Dividing both sides by \(R\);

Col. A: \(1\)
Col. B: \(2(\sqrt{2}-1)\)

Col. A: \(1\)
Col. B: \(0.828\)

Hence, option A


How is AE = R + 2r? It should be AE = R + r + \sqrt{r} as 2r is the diameter of the smaller circle and it doesn't touch the vertex of the square.
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Re: The figure above shows 2 circles. The larger circle has center A [#permalink]
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Simply, assign value to R.
Suppose R=8
Then R +2r is diagonal of square.
Diagonal value can be found by using Pythagoras theorem.
Then subtract R from diagobal value to get 2r and multiply that answer with 2 to get 4r.
Which shows Qty A is greater than Qty. B.

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Re: The figure above shows 2 circles. The larger circle has center A [#permalink]
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Re: The figure above shows 2 circles. The larger circle has center A [#permalink]
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